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Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration

Polyhydroxyalkanoates are natural, biodegradable, thermoplastic and sustainable polymers with a huge potential in fabrication of bioresorbable implantable devices for tissue engineering. We describe a comparative evaluation of three medium chain length polyhydroxyalkanoates (mcl-PHAs), namely poly(3...

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Autores principales: Nigmatullin, Rinat, Taylor, Caroline S, Basnett, Pooja, Lukasiewicz, Barbara, Paxinou, Alexandra, Lizarraga-Valderrama, Lorena R, Haycock, John W, Roy, Ipsita
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10369215/
https://www.ncbi.nlm.nih.gov/pubmed/37501678
http://dx.doi.org/10.1093/rb/rbad063
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author Nigmatullin, Rinat
Taylor, Caroline S
Basnett, Pooja
Lukasiewicz, Barbara
Paxinou, Alexandra
Lizarraga-Valderrama, Lorena R
Haycock, John W
Roy, Ipsita
author_facet Nigmatullin, Rinat
Taylor, Caroline S
Basnett, Pooja
Lukasiewicz, Barbara
Paxinou, Alexandra
Lizarraga-Valderrama, Lorena R
Haycock, John W
Roy, Ipsita
author_sort Nigmatullin, Rinat
collection PubMed
description Polyhydroxyalkanoates are natural, biodegradable, thermoplastic and sustainable polymers with a huge potential in fabrication of bioresorbable implantable devices for tissue engineering. We describe a comparative evaluation of three medium chain length polyhydroxyalkanoates (mcl-PHAs), namely poly(3-hydroxyoctanoate), poly(3-hydroxyoctanoate-co-3-hydoxydecanoate) and poly(3-hydroxyoctanoate-co-3-hydroxydecanoate-co-3-hydroxydodecanoate), one short chain length polyhydroxyalkanoate, poly(3-hydroxybutyrate), P(3HB) and synthetic aliphatic polyesters (polycaprolactone and polylactide) with a specific focus on nerve regeneration, due to mechanical properties of mcl-PHAs closely matching nerve tissues. In vitro biological studies with NG108-15 neuronal cell and primary Schwann cells did not show a cytotoxic effect of the materials on both cell types. All mcl-PHAs supported cell adhesion and viability. Among the three mcl-PHAs, P(3HO-co-3HD) exhibited superior properties with regards to numbers of cells adhered and viable cells for both cell types, number of neurite extensions from NG108-15 cells, average length of neurite extensions and Schwann cells. Although, similar characteristics were observed for flat P(3HB) surfaces, high rigidity of this biomaterial, and FDA-approved polymers such as PLLA, limits their applications in peripheral nerve regeneration. Therefore, we have designed, synthesized and evaluated these materials for nerve tissue engineering and regenerative medicine, the interaction of mcl-PHAs with neuronal and Schwann cells, identifying mcl-PHAs as excellent materials to enhance nerve regeneration and potentially their clinical application in peripheral nerve repair.
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spelling pubmed-103692152023-07-27 Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration Nigmatullin, Rinat Taylor, Caroline S Basnett, Pooja Lukasiewicz, Barbara Paxinou, Alexandra Lizarraga-Valderrama, Lorena R Haycock, John W Roy, Ipsita Regen Biomater Research Article Polyhydroxyalkanoates are natural, biodegradable, thermoplastic and sustainable polymers with a huge potential in fabrication of bioresorbable implantable devices for tissue engineering. We describe a comparative evaluation of three medium chain length polyhydroxyalkanoates (mcl-PHAs), namely poly(3-hydroxyoctanoate), poly(3-hydroxyoctanoate-co-3-hydoxydecanoate) and poly(3-hydroxyoctanoate-co-3-hydroxydecanoate-co-3-hydroxydodecanoate), one short chain length polyhydroxyalkanoate, poly(3-hydroxybutyrate), P(3HB) and synthetic aliphatic polyesters (polycaprolactone and polylactide) with a specific focus on nerve regeneration, due to mechanical properties of mcl-PHAs closely matching nerve tissues. In vitro biological studies with NG108-15 neuronal cell and primary Schwann cells did not show a cytotoxic effect of the materials on both cell types. All mcl-PHAs supported cell adhesion and viability. Among the three mcl-PHAs, P(3HO-co-3HD) exhibited superior properties with regards to numbers of cells adhered and viable cells for both cell types, number of neurite extensions from NG108-15 cells, average length of neurite extensions and Schwann cells. Although, similar characteristics were observed for flat P(3HB) surfaces, high rigidity of this biomaterial, and FDA-approved polymers such as PLLA, limits their applications in peripheral nerve regeneration. Therefore, we have designed, synthesized and evaluated these materials for nerve tissue engineering and regenerative medicine, the interaction of mcl-PHAs with neuronal and Schwann cells, identifying mcl-PHAs as excellent materials to enhance nerve regeneration and potentially their clinical application in peripheral nerve repair. Oxford University Press 2023-07-21 /pmc/articles/PMC10369215/ /pubmed/37501678 http://dx.doi.org/10.1093/rb/rbad063 Text en © The Author(s) 2023. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Nigmatullin, Rinat
Taylor, Caroline S
Basnett, Pooja
Lukasiewicz, Barbara
Paxinou, Alexandra
Lizarraga-Valderrama, Lorena R
Haycock, John W
Roy, Ipsita
Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
title Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
title_full Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
title_fullStr Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
title_full_unstemmed Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
title_short Medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
title_sort medium chain length polyhydroxyalkanoates as potential matrix materials for peripheral nerve regeneration
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10369215/
https://www.ncbi.nlm.nih.gov/pubmed/37501678
http://dx.doi.org/10.1093/rb/rbad063
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